Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
Nanoscale. 2015 Dec 7;7(45):19053-9. doi: 10.1039/c5nr02511g. Epub 2015 Oct 30.
Controllable propagation of electromagnetic energy in plasmonic nanowaveguides is of great importance for building nanophotonic circuits. Here, we studied the routing of surface plasmons in silver nanowire structures by combining experiments and electromagnetic simulations. The superposition of different plasmon modes results in the tunable near field patterns of surface plasmons on the nanowire. Using the quantum dot fluorescence imaging technique, we experimentally demonstrate that the near field distribution on the nanowire controls the surface plasmon transmission in the nanowire networks. By controlling the polarization of the input light or by controlling the dielectric coating on the nanowire to modulate the plasmon field distribution and guarantee the strong local field intensity at the connecting junction, the surface plasmons can be efficiently routed to the connected nanowires. Depositing a thin layer of Al2O3 film onto the nanowires can reverse the polarization dependence of the output intensity at the nanowire terminals. These results are instructive for designing functional plasmonic nanowire networks and metal-nanowire-based nanophotonic devices.
在等离子体纳米波导中控制电磁波能量的传播对于构建纳米光子电路非常重要。在这里,我们通过组合实验和电磁模拟研究了银纳米线结构中表面等离子体的路由。不同等离子体模式的叠加导致了表面等离子体在纳米线上的可调谐近场模式。我们使用量子点荧光成像技术实验证明了纳米线上的近场分布控制了纳米线网络中的表面等离子体传输。通过控制输入光的偏振或通过控制纳米线上的介电涂层来调制等离子体场分布并保证连接结处的强局域场强度,可以有效地将表面等离子体路由到连接的纳米线上。在纳米线沉积一层薄的 Al2O3 薄膜可以反转纳米线末端输出强度的偏振依赖性。这些结果对于设计功能化的等离子体纳米线网络和基于金属纳米线的纳米光子器件具有指导意义。